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Hands-On Meta Learning with Python

You're reading from   Hands-On Meta Learning with Python Meta learning using one-shot learning, MAML, Reptile, and Meta-SGD with TensorFlow

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Product type Paperback
Published in Dec 2018
Publisher Packt
ISBN-13 9781789534207
Length 226 pages
Edition 1st Edition
Languages
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Author (1):
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Sudharsan Ravichandiran Sudharsan Ravichandiran
Author Profile Icon Sudharsan Ravichandiran
Sudharsan Ravichandiran
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Table of Contents (12) Chapters Close

Preface 1. Introduction to Meta Learning 2. Face and Audio Recognition Using Siamese Networks FREE CHAPTER 3. Prototypical Networks and Their Variants 4. Relation and Matching Networks Using TensorFlow 5. Memory-Augmented Neural Networks 6. MAML and Its Variants 7. Meta-SGD and Reptile 8. Gradient Agreement as an Optimization Objective 9. Recent Advancements and Next Steps 10. Assessments 11. Other Books You May Enjoy

Summary


In this chapter, we've learned about TAML for reducing the task bias. We saw two types of methods: entropy-based and inequality-based TAML. Then, we explored meta imitation learning, which combines meta learning with imitation learning. We saw how meta learning helps imitation learning to learn from fewer imitations.We also saw how to apply model agnostic meta learning in an unsupervised learning setting using CACTUS.Then, we explored a deep meta learning algorithm called learning to learn in concept space. We saw how meta learning can be boosted by the power of deep learning.

Meta learning is one of the most interesting branches in the field of AI; now that you've understood various meta learning algorithms, you can start building meta learning models that are generalizable across various tasks and contribute to meta learning research.

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